可视化多模态图像集合

Anyela M. Chavarro, Jorge E. Camargo, F. González
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引用次数: 1

摘要

本文提出了两种不同的多模态图像集合可视化策略,这两种策略都是基于在同一潜在空间中融合文本和视觉内容的表示策略。这个潜在空间允许找到图像的语义组,这些语义组用于选择图像原型以构建语义可视化。第一种策略是基于图形的可视化,其中边表示图像相似性,顶点表示图像。第二种是多模态可视化,其中一组图像原型围绕语义标记云。因此,我们建立了一个系统原型来评估这些策略。结果表明,该策略具有较好的应用前景,可用于实际图像采集系统中,改善图像采集的搜索过程。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Visualizing multimodal image collections
This paper presents two different strategies for visualizing multimodal image collections, which are based on a representation strategy that fuses text and visual content in the same latent space. This latent space allows to find semantic groups of images, which are used to select image prototypes to build a semantic visualization. The first strategy is a graph-based visualization in which edges represent image similarities and vertices represent images. The second is a multimodal visualization in which a set of image prototypes surround a semantic tag cloud. Thus, we built a system prototype in order to evaluate the strategies. Results show that the propose strategy is promising and it could be used in a real image exploration system to improve the image collection exploration process.
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